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Deep Joint Source-Channel Coding for Wireless Image Transmission

机译:用于无线图像传输的深度联合源通道编码

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with a non-trainable layer in the middle that represents the noisy communication channel. Our results show that the proposed deep JSCC scheme outperforms digital transmission concatenating JPEG or JPEG2000 compression with a capacity achieving channel code at low signal-to-noise ratio (SNR) and channel bandwidth values in the presence of additive white Gaussian noise (AWGN). More strikingly, deep JSCC does not suffer from the “cliff effect,” and it provides a graceful performance degradation as the channel SNR varies with respect to the SNR value assumed during training. In the case of a slow Rayleigh fading channel, deep JSCC learns noise resilient coded representations and significantly outperforms separation-based digital communication at all SNR and channel bandwidth values.
机译:中间有一个不可训练的层,代表嘈杂的通信通道。我们的结果表明,在存在加性高斯白噪声(AWGN)的情况下,提出的深度JSCC方案优于将JPEG或JPEG2000压缩级联的数字传输,并具有在低信噪比(SNR)和信道带宽值的情况下实现信道代码的能力。更引人注目的是,深JSCC不会遭受“悬崖效应”的困扰,并且由于信道SNR相对于训练期间假设的SNR值而变化,因此它会导致性能下降。在慢速瑞利衰落信道的情况下,深度JSCC可以学习抗噪声编码表示,并且在所有SNR和信道带宽值下,其性能都大大优于基于分离的数字通信。

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